Homogeneous and heterogeneous precipitation mechanisms in a binary Mg–Nd alloy

被引:0
作者
D. Choudhuri
N. Dendge
S. Nag
S. Meher
T. Alam
M. A. Gibson
R. Banerjee
机构
[1] University of North Texas,Department of Materials Science and Engineering
[2] CAST CRC and CSIRO Process Science & Engineering,undefined
来源
Journal of Materials Science | 2014年 / 49卷
关键词
Edge Dislocation; Precipitate Phase; Atom Probe; Dislocation Line; Selected Area Diffraction Pattern;
D O I
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中图分类号
学科分类号
摘要
Parallel modes of precipitation mechanisms in an Mg–Nd alloy were revealed by examining an isothermally annealed high pressure die cast alloy at 177 °C for up to 100 h. Broadly, precipitate evolution was observed to occur concurrently on dislocations and within the surrounding α-Mg matrix. However, it was observed that the presence of dislocation accelerated the precipitate formation kinetics significantly. In contrast to the accepted precipitation pathway in the Mg–Nd system, i.e., SSSS → GP zones → β″ → β′ → β1 → β → βe, dislocations were found to preferentially facilitate the formation of β′ and β1 precipitates even at the very early stages (5 h) of annealing. Within the same time frame, a homogeneous distribution of Nd-rich pockets was observed throughout the α-Mg matrix, along with the β′ and β1 precipitates decorating dislocation lines. Results further indicate that these Nd-rich regions initiated precipitation within the parent α-Mg matrix. The formation of these Nd-rich pockets was explained on the basis of a miscibility gap in the α-Mg phase at 177 °C. Our results demonstrate that the presence of dislocations influence strongly the phase-transformation pathways in Mg-rare earth alloys by facilitating the formation of selective precipitate phases.
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页码:6986 / 7003
页数:17
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